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A Multidomain Flexible Docking Approach to Deal with Large Conformational Changes in the Modeling of Biomolecular Complexes

机译:一种多域灵活的对接方法来处理生物分子复合物建模中的大构象变化

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摘要

Binding-induced backbone and large-scale conformational changes represent one of the major challenges in the modeling of biomolecular complexes by docking. To address this challenge, we have developed a flexible multidomain docking protocol that follows a "divide-and-conquer" approach to model both large-scale domain motions and small-to medium-scale interfacial rearrangements: the flexible binding partner is treated as an assembly of subparts/domains that are clocked simultaneously making use of HADDOCK's multidomain docking ability. For this, the flexible molecules are cut at hinge regions predicted using an elastic network model. The performance of this approach is demonstrated on a benchmark covering an unprecedented range of conformational changes of 1.5 to 19.5 angstrom. We show from a statistical survey of known complexes that the cumulative sum of eigenvalues obtained from the elastic network has some predictive power to indicate the extent of the conformational change to be expected.
机译:结合诱导的骨架和大规模构象变化代表了通过对接建模生物分子复合物的主要挑战之一。为解决这一挑战,我们开发了一种灵活的多域对接协议,该协议遵循“分而治之”的方法来对大型域运动和中小型界面重排进行建模:灵活的绑定伙伴被视为利用HADDOCK的多域对接功能,可同时进行子时钟/域的组装。为此,在使用弹性网络模型预测的铰链区域切割柔性分子。这种方法的性能在基准测试中得到了证明,该测试涵盖了前所未有的1.5到19.5埃的构象变化范围。从已知复合物的统计调查中我们可以看到,从弹性网络获得的特征值的累积和具有一定的预测能力,可以指示预期的构象变化程度。

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